13

I have the String a="abcd1234" and I want to split this into String b="abcd" and Int c=1234. This Split code should apply for all king of input like ab123456 and acff432 and so on. How to split this kind of Strings. Is it possible?

0
24

You could try to split on a regular expression like (?<=\D)(?=\d). Try this one:

String str = "abcd1234";
String[] part = str.split("(?<=\\D)(?=\\d)");
System.out.println(part[0]);
System.out.println(part[1]);

will output

abcd
1234

You might parse the digit String to Integer with Integer.parseInt(part[1]).

4
  • 3
    \D matches all non-digit characters, while \d matches all digit characters. ?<= is a positive lookbehind (so everything before the current position is asserted to be a non-digit character), ?= is a positive lookahead (so everything after the current position is asserted as a digit). Does this help? – ConcurrentHashMap Apr 26 '16 at 12:00
  • @ConcurrentHashMap this regex will not work if a string like "ABC123DEF567". – Mohit Tyagi Jul 20 '17 at 8:41
  • 1
    @MohitTyagi That's correct, but this is a total different question than the OP had. If you want to find the correct regex, try to play around a little bit with github.com/gskinner/regexr. – ConcurrentHashMap Jul 20 '17 at 15:58
  • How will we separate if we have , for example a,1,g,4,5,12,jh,49,mn? – Rishabh Agarwal Dec 15 '17 at 3:54
3

You can do the next:

  1. Split by a regex like split("(?=\\d)(?<!\\d)")
  2. You have an array of strings with that and you only have to parse it.
1
  • "(?=\\d)(?<!\\d)" please explain this – Rishabh Agarwal Dec 15 '17 at 3:59
3

Use a regular expression:

Pattern p = Pattern.compile("([a-z]+)([0-9]+)");
Matcher m = p.matcher(string);
if (!m.find())
{ 
  // handle bad string
}
String s = m.group(1);
int i = Integer.parseInt(m.group(2));

I haven't compiled this, but you should get the idea.

1
1
String st = "abcd1234";
String st1=st.replaceAll("[^A-Za-z]", "");
String st2=st.replaceAll("[^0-9]", "");
System.out.println("String b = "+st1);
System.out.println("Int c = "+st2);

Output

String b = abcd
Int c = 1234
0

A brute-force solution.

String a = "abcd1234";
int i;
for(i = 0; i < a.length(); i++){
    char c = a.charAt(i);
    if( '0' <= c && c <= '9' )
        break;
}
String alphaPart = a.substring(0, i);
String numberPart = a.substring(i);
0

try with this:

String input_string = "asdf1234";
String string_output=input_string.replaceAll("[^A-Za-z]", "");
int number_output=Integer.parseInt(input_string.replaceAll("[^0-9]", ""));
System.out.println("string_output = "+string_output);
System.out.println("number_output = "+number_output);
0

You can add some delimiter characters to each group of symbols, and then split the string around those delimiters:

public static void main(String[] args) {
    String[][] arr = {
            split("abcd1234", "\u2980"),
            split("ab123456", "\u2980"),
            split("acff432", "\u2980")};

    Arrays.stream(arr)
            .map(Arrays::toString)
            .forEach(System.out::println);
    // [abcd, 1234]
    // [ab, 123456]
    // [acff, 432]
}
private static String[] split(String str, String delimiter) {
    return str
            // add delimiter characters
            // to non-empty sequences
            // of numeric characters
            // and non-numeric characters
            .replaceAll("(\\d+|\\D+)", "$1" + delimiter)
            // split the string around
            // delimiter characters
            .split(delimiter, 0);
}

See also: How to split a string delimited on if substring can be casted as an int?

-1
public static void main(String... s) throws Exception {
        Pattern VALID_PATTERN = Pattern.compile("([A-Za-z])+|[0-9]*");
    List<String> chunks = new ArrayList<String>();
    Matcher matcher = VALID_PATTERN.matcher("ab1458");
    while (matcher.find()) {
        chunks.add( matcher.group() );
    }
}
7
  • You're confusing your character class brackets [] with parentheses (). – Ravi K Thapliyal May 28 '13 at 8:48
  • @Javier: The patterns says: Any case letters and/or numbers – sadhu May 28 '13 at 8:58
  • @Ravi: Sorry, I did not get you. – sadhu May 28 '13 at 8:58
  • Your quantifier + should have been after () like ([A-Z]|[a-z])+ and letters could also have been clubbed together like [a-zA-Z]. First issue is a downright error. The second one just works better. – Ravi K Thapliyal May 28 '13 at 9:05
  • Actually, your regex just won't work. You have a | pipe before [0-9]+ making an OR between letters and numbers. You should withdraw this as a solution or fix it after testing properly. – Ravi K Thapliyal May 28 '13 at 9:07
-1

Use regex "[^A-Z0-9]+|(?<=[A-Z])(?=[0-9])|(?<=[0-9])(?=[A-Z])" to split the sting by alphabets and numbers.

for e.g.

String str = "ABC123DEF456";

Then the output by using this regex will be :

ABC
123
DEF
456

1
  • Welcome to Stack Overflow. This question already has an accepted answer. Please provide more explanation to show how your answer is perhaps better or different than those already provided. – avojak Jul 20 '17 at 18:54

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